首页 | 本学科首页   官方微博 | 高级检索  
相似文献
 共查询到17条相似文献,搜索用时 203 毫秒
1.
本文采用1-乙基-3-甲基咪唑六氟磷酸盐(EMIPF6)、六氟磷酸锂(LiPF6)和偏氟乙烯-六氟丙烯共聚物(P(VdF-HFP))为原料制得P(VdF-HFP)-EMIPF6-LiPF6体系离子液体凝胶聚合物电解质,选取碳酸甲乙酯(EMC)、碳酸二甲酯(DMC)、碳酸二乙酯(DEC)以及碳酸乙烯酯(EC)和碳酸丙烯酯(PC)混合物(EC-PC)作为离子液体凝胶聚合物电解质的添加剂,分别研究了它们对聚合物电解质膜电化学性能的影响。结果表明:加入EC-PC的P(VdF-HFP)-EMIPF6-LiPF6电解质膜的电化学窗口达到4.6 V,锂离子迁移数为0.44,30 ℃时离子电导率为1.65 mS·cm-1;而DEC、DMC、EMC对电解质膜的电化学稳定性、锂离子迁移数存在不良的影响,对离子电导率的提高不明显。研究了正极材料LiCoO2在P(VdF-HFP)-EMIPF6-LiPF6+EC-PC电解质中的充放电循环性能,其首次放电比容量达到116.5 mAh·g-1,充放电20次后,电池容量没有明显衰减。  相似文献   

2.
以聚偏氟乙烯-六氟丙烯P(VdF-HFP)聚合物为基体, 制备了含离子液体1-甲基-3-乙基咪唑六氟磷酸盐(EMIPF6)、用于锂离子电池的离子液体复合聚合物电解质[P(VdF-HFP)/LiPF6/EMIPF6/EC(碳酸乙烯酯)-PC(碳酸丙烯酯)]. 采用热重分析法以及燃烧实验测试了复合聚合物电解质的热稳定性. 离子电导率测试表明, 离子液体的存在显著改善了复合聚合物电解质的离子传输; 循环伏安测试表明, 添加剂EC和PC的加入提高了复合电解质的阴极稳定性, 制得的离子液体复合聚合物电解质在0.3-4.3 V 电压范围内稳定存在. Li4Ti5O12 和LiCoO2为电极材料、P(VdF-HFP)/LiPF6/EMIPF6/EC-PC 为电解质的半电池表现出优良的循环性能, 0.1C充放电倍率下, Li/LiCoO2和Li/Li4Ti5O12半电池的可逆容量分别为130和144 mAh·g-1. 但EC、PC在一定程度上降低了离子液体复合聚合物电解质的热稳定性.  相似文献   

3.
黄先威  邓继勇  许律  沈平  赵斌  谭松庭 《化学学报》2012,70(15):1604-1610
利用静电纺丝技术,制备了不同的聚合物/TiO2杂化纳米纤维微孔膜,吸附液体电解质后形成聚合物/TiO2杂化纳米纤维微孔膜准固态电解质,应用于制备准固态染料敏化太阳能电池(DSSCs).测试了电纺聚合物纳米纤维微孔膜电解质的吸液率、孔隙率、离子电导率等参数,研究了纳米纤维微孔膜准固态电解质DSSCs的光伏性能.结果显示,TiO2的掺入可提高聚合物/TiO2杂化纳米纤维微孔膜对液态电解质的浸润扩散性能,从而提高纳米纤维微孔膜对液态电解质的吸附能力.组装的DSSCs的光电转换效率可达液态电解质的90%以上,并具有较好的长期工作稳定性.  相似文献   

4.
采用溶胶-凝胶法制备了不同纳米TiO2含量的聚砜(PSF)/TiO2杂化超滤膜, 研究了TiO2浓度对聚砜铸膜液流变学及热力学性质的影响, 构建了计算成膜过程中表观扩散系数(Da)的新方法, 求出不同TiO2浓度及温度下的Da值, 进而剖析了铸膜液流变学和热力学性质的变化对成膜动力学的影响. 并通过扫描电镜观察、杂化膜孔隙率和超滤性能的测试考察了表观扩散系数与膜结构和性能的关系. 结果表明, 加入TiO2溶胶的PSF铸膜液由牛顿流体转变为非牛顿流体, 其粘度随TiO2浓度增大而增大. TiO2的加入减小了铸膜液对非溶剂的容纳能力, 加速铸膜液的液-液相分离, 同时TiO2引起的热力学促进作用和流变学阻碍作用相互竞争, 共同影响Da的变化. 实验得出, Da随温度升高而增大, 随TiO2浓度的增大有先增大后减小的趋势. 表观扩散系数Da与膜的结构和性能具有很好的相关性并能直观地描述整个成膜过程.  相似文献   

5.
通过烯丙基环糊精(allyl-β-CD)与丙烯酸(AA)的共聚合反应在环糊精聚合物链中引入了活性基团羧基, 运用溶胶-凝胶法制备了新型的环糊精聚合物P(CD-co-AA)/TiO2有机-无机杂化材料. 溶剂抽提结果和FT-IR表明杂化材料中有机无机两相间存在着化学键. 通过XRD, SEM, TGA研究表明有机无机两相高度相容, 热稳定性能有大大的提高. 另外还发现, 在所制的材料中TiO2的含量对材料的结构和性能有很大的影响, 当TiO2的含量为60% (w)时, 材料表面均匀光滑, 有机无机两相相容性和材料的热稳定性能最好.  相似文献   

6.
采用溶胶凝胶法制成了纳米TiO2电极, 在离子液体中将其应用于3-甲基噻吩的电化学聚合, 采用循环伏安法(CV), 在线紫外可见光谱(UV-Vis), 扫描电镜(SEM)和电化学阻抗谱(EIS)对TiO2/聚3-甲基噻吩(TiO2/PMT)复合膜进行了表征并研究了其电化学性质. 实验证明, 不论是用循环伏安法, 恒电位, 还是恒电流方法, 都能在电极上得到聚3-甲基噻吩(PMT)膜, 并伴随有明显的掺杂和去掺杂过程. 对应的在线紫外可见光谱上, 也出现了氧化和还原两种不同的吸收状态, 还原(去掺杂)过程中在480 nm处有一个吸收峰, 而氧化(掺杂)过程中此峰消失, 取而代之的是一个可见光区的逐渐增强的吸收. PMT膜是p型半导体, TiO2是n型半导体, 两者之间能够形成p-n异质结, 使光电转换效率得以提高. SEM给出了TiO2电极和聚合物修饰的TiO2的形貌图, 电极的交流阻抗谱则从一个角度说明了聚合物膜修饰电极的导电性.  相似文献   

7.
采用溶胶凝胶法制成了纳米TiO2电极, 在离子液体中将其应用于3-甲基噻吩的电化学聚合, 采用循环伏安法(CV), 在线紫外可见光谱(UV-Vis), 扫描电镜(SEM)和电化学阻抗谱(EIS)对TiO2/聚3-甲基噻吩(TiO2/PMT)复合膜进行了表征并研究了其电化学性质. 实验证明, 不论是用循环伏安法, 恒电位, 还是恒电流方法, 都能在电极上得到聚3-甲基噻吩(PMT)膜, 并伴随有明显的掺杂和去掺杂过程. 对应的在线紫外可见光谱上, 也出现了氧化和还原两种不同的吸收状态, 还原(去掺杂)过程中在480 nm处有一个吸收峰, 而氧化(掺杂)过程中此峰消失, 取而代之的是一个可见光区的逐渐增强的吸收. PMT膜是p型半导体, TiO2是n型半导体, 两者之间能够形成p-n异质结, 使光电转换效率得以提高. SEM给出了TiO2电极和聚合物修饰的TiO2的形貌图, 电极的交流阻抗谱则从一个角度说明了聚合物膜修饰电极的导电性.  相似文献   

8.
以钛酸正丁酯为前驱体, 采用溶胶-凝胶-水热晶化法在不锈钢(SS)表面制备TiO2纳米膜. 利用X射线衍射(XRD)、Raman光谱、场发射扫描电子显微镜(SEM)、原子力显微镜(AFM)和俄歇电子能谱(AES)表征了TiO2纳米膜的晶型、表面形貌和表面化学组成. 通过极化曲线和电化学阻抗谱(EIS)研究了TiO2纳米膜的耐蚀性能. 170 °C下水热晶化制备的锐钛矿TiO2与450 °C焙烧制备的锐钛矿TiO2的结晶度类似, 但两种TiO2薄膜的表面结构存在明显差异, 水热晶化法制备的TiO2纳米膜在3.5% (w) NaCl溶液中的耐蚀性能优于焙烧法制备的.  相似文献   

9.
采用溶胶-凝胶浸渍法和光沉积法制备了系列Pt/RE/TiO2纳米光催化剂, 通过XRD和电化学等手段进行了表征. 以甲醛为电子给体, 考察了光催化剂在紫外光照射下的制氢活性. 稀土掺杂提高了Pt/TiO2光催化制氢活性, 其顺序分别为La/TiO2>Sm/TiO2>Eu/TiO2>Dy/TiO2>Er/TiO2. 掺入稀土元素后, 阻止了TiO2从锐钛矿晶型向金红石晶型的转变, 这是光催化剂活性提高的原因之一. 计算晶格畸变应力e数据表明, Ti4+可能反掺入了表面稀土氧化物的晶格中. 电化学实验表明稀土掺杂TiO2的平带电位负移, 其原因可解释为晶格畸变促使费米能级升高, 导致催化剂导带的平带电位负移, 因此导带上被激发电子具有更强的还原能力, 从而有利于光催化制氢活性的提高.  相似文献   

10.
溶胶-凝胶法制备聚砜/二氧化钛有机-无机杂化超滤膜   总被引:5,自引:0,他引:5  
杨亚楠  王鹏  郑庆柱 《化学学报》2006,64(6):569-573
采用溶胶-凝胶法制备了不同TiO2含量的PSF/TiO2杂化超滤膜, 并通过SEM, XRD TG/DTA, 超滤实验, 机械性能测试, 水接触角测试等手段对膜的结构和性能进行了表征. 结果表明: 当TiO2的质量分数为9.3%时, 膜亚层的指状孔消失, 形成了以纳米TiO2颗粒为交联点的网络状孔, 同时膜的亲水性、机械性能和热稳定性都有明显的改善, 并在截留滤基本保持不变的情况下, 水通量明显提高. 但过高的TiO2含量(w≥11.9%)会产生严重的纳米颗粒团聚现象而造成膜的各项性能指标下降.  相似文献   

11.
MCM-41介孔分子筛掺杂的微孔型聚合物电解质的制备与表征   总被引:6,自引:0,他引:6  
以介孔分子筛MCM-41作填料,丙酮与二甲基甲酰胺混合液为溶剂,用直接造孔成膜的方法制备了微孔型聚合物电解质膜.该法避免使用造孔增塑剂,既简化了制膜工序,又减少电池中副反应的发生,使电池性能得以提高.MCM-41分子筛具有六方有序排列的单一柱状孔道结构和纳米级的粒子尺度,其骨架结构单元与一般聚合物电解质常用的纳米SiO2填料具有相同的化学成分,该分子筛堆积时形成的表面空隙及其独有的一维介孔孔道对聚合物电解质微孔的形成与连通、电导率的提高都具有重要作用,是一种极具实用价值的新型无机填料.  相似文献   

12.
其鲁 《高分子科学》2006,(2):213-220
A copolymer of poly(acrylonitrile-co-styrene) (SAN) was synthesized via an emulsion polymerization method. Novel polymer electrolyte membranes cast from the blends of poly(vinylidene fluoride-co-hexafluoropropylene) (PVDF-HFP), SAN and fumed silica (SiO2) are microporous and can be used in polymer lithium-ion batteries. The membrane shows excellent characteristics such as high ionic conductivity and good mechanical strength when the mass ratio between SAN and PVDF-HFP and SiO2 is 3.5/31.5/5. The ionic conductivity of the membrane soaked in a liquid electrolyte of 1 mol/L LiPF6/EC/DMC/DEC is 4.9×10-3 S cm-1 at 25℃. The membrane is electrochemical stable up to 5.5 V versus Li /Li in the liquid electrolyte. The influences of SiO2 content on the porosity and mechanical strength of the membranes were studied. Polymer lithium-ion batteries based on the membranes were assembled and their performances were also studied.  相似文献   

13.
Composite polymer electrolyte membranes composed of poly(ethylene oxide) (PEO), poly(vinylidene fluoride-hexafluoropropylene) {P(VdF-HFP)} blends, dedoped (insulating) polyaniline (PAni) nanofibers, and LiClO4 as salt have been synthesized with varying fraction of dedoped PAni nanofibers (from 2 to 10 wt.%). The ionic conductivity of PEO–P(VdF-HFP)–LiClO4 electrolyte system increases with increase in the fraction of dedoped polyaniline nanofibers. This could be attributed to the incorporation of nanofibers (aspect ratio >50), which may provide high ion conducting path along the interface due to Lewis acid–base interactions between Li+ ions and lone pair of electrons of nitrogen atom of polyaniline. However, at higher fraction (>6 wt.%), the nanofibers get phase separated from the polymer matrix and form domain-like structures, which may act as physical barrier to the conduction of Li+ ions resulting in decreased ionic conductivity. Electrochemical potential window and interfacial stability of nanofibers dispersed polymer electrolyte membranes are also better than that of nanofibers free membranes.  相似文献   

14.
张玉香  霍志鹏  张昌能  戴松元 《化学学报》2009,67(19):2253-2257
采用偏氟乙烯-六氟丙烯共聚物[P(VDF-HFP)]胶凝3-甲氧基丙腈基液体电解质, 成功制备了凝胶电解质并组装成准固态染料敏化太阳电池. 差示扫描量热测试结果表明凝胶电解质的溶液-凝胶转变温度(TSG)为71 ℃. 利用电化学方法分析了凝胶电解质中 电对的表观扩散系数及电导率低于液体电解质的原因, 同时结合暗态伏安法考察了电池内部TiO2多孔薄膜电极/电解质界面处的暗反应, 分析了凝胶化对电池光伏性能的影响. 进一步老化实验结果表明凝胶电池的稳定性明显优于液体电池.  相似文献   

15.
《Solid State Sciences》2012,14(5):598-606
Gel polymer electrolytes containing 1-ethyl-3-methylimidazolium-bis (trifluoromethyl-sulfnyl)imide (EMITFSI) ionic liquid were prepared for lithium ion batteries by solution casting method. Thermal and electrochemical properties have been determined for the gel polymer electrolytes. Proper addition of EMITFSI to the P(VdF-HFP)-LiTFSI polymer electrolyte improves the ionic conductivity and electrochemical window to 2.11 × 10−3 S cm−1 (30 °C) and 4.6 V. In combination of the prepared ternary P(VdF-HFP)-LiTFSI-EMITFSI ionic liquid polymer electrolytes, Li4Ti5O12 anode exhibited two extra voltage plateaus around 1.1 V and 2.3 V except the typical voltage plateau around 1.6 V by possible side reaction between ionic liquid and polymer. LiFePO4 cathode exhibited high capacity above 140 mA h g−1 and retention of 93.1% due to the suppressed polarization effect caused by enhanced ion transport properties. The high temperature of 80 °C didn't have significant impact on the cycling performance.  相似文献   

16.
Organic-inorganic hybrid membranes based on poly(ethylene oxide) (PEO) 6.25 wt%/poly(vinylidene fluoride hexa fluoro propylene) [P(VdF-HFP)] 18.75 wt% were prepared by using various concentration of nanosized barium titanate (BaTiO3) filler. Structural characterizations were made by X-ray diffraction and Fourier transform infrared spectroscopy, which indicate the inclusion of BaTiO3 in to the polymer matrix. Addition of filler creates an effective route of polymer-filler interface and promotes the ionic conductivity of the membranes. From the ionic conductivity results, 6 wt% of BaTiO3-incorporated composite polymer electrolyte (CPE) showed the highest ionic conductivity (6 × 10?3 Scm?1 at room temperature). It is found that the filler content above 6 wt% rendered the membranes less conducting. Morphological images reveal that the ceramic filler was embedded over the membrane. Thermogravimetric and differential thermal analysis (TG-DTA) of the CPE sample with 6 wt% of the BaTiO3 shows high thermal stability. Electrochemical performance of the composite polymer electrolyte was studied in LiFePO4/CPE/Li coin cell. Charge-discharge cycle has been performed for the film exhibiting higher conductivity. These properties of the nanocomposite electrolyte are suitable for Li-batteries.  相似文献   

17.
A novel process was proposed for preparation of microporous poly(acrylonitrile–methyl methacrylate) (P(AN–MMA)) membranes by phase inversion techniques using ultrasonic humidifier. Being prepared by dissolving the polymer (PAN–MMA) in the N,N-dimethylformamide (DMF) solution with mechanical stirring, the homogenous casting solution was cast onto a clean glass plate. Successively, the glass plate was exposed to the water vapor produced by ultrasonic humidifier, inducing the phase inversion. It is found the pore size is much more uniform across the cross-section of the membrane than that of the porous membrane prepared by conventional water bath coagulation technique. The microporous membranes were directly obtained after the washing and drying. It had about 1–5 μm of pores and presented an ionic conductivity of 2.52 × 10−3 S/cm at room temperature when gelled with 1 M LiPF6/EC-DMC (1:1 vol.%) electrolyte solution. The test cells with the gel electrolytes prepared from as-prepared microporous membranes showed stable cycling capacities, indicating that the microporous membrane, which was prepared from cheap starting materials acrylonitrile and methyl methacrylate, can be used for the gel electrolyte of lithium batteries.  相似文献   

设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号